Spin polarization and color superconductivity
Creators
- 1. Tokyo Metropolitan Univ., Dept. of Physics, Hachioji, Tokyo (Japan)
- 2. Nihon Univ., College of Bioresouce Sciences, Fujisawa, Kanagawa (Japan)
- 3. Kyoto Univ., Dept. of Physics, Kyoto (Japan)
Description
A coexistent phase of spin polarization and color superconductivity in high-density QCD is investigated using a self-consistent mean-field method at zero temperature. The axial-vector current stemming from the Fock exchange term of the one-gluon-exchange interaction has a central role to cause spin polarization. The magnitude of spin polarization is determined by the coupled Schwinger-Dyson equation with a superconducting gap function. As a significant feature the Fermi surface is deformed by the axial-vector self-energy and then rotational symmetry is spontaneously broken. The gap function is also taken to be anisotropic in accordance with the deformation. As a result of numerical calculation, it is found that spin polarization barely conflicts with color superconductivity, but almost coexists with it. (author)
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36116232.pdf
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Additional details
Publishing Information
- Imprint Title
- Proceeding of the fifth symposium on science of hadrons under extreme conditions
- Imprint Pagination
- 244 p.
- Journal Page Range
- p. 187-195
- Report number
- JAERI-Conf--2003-009
Conference
- Title
- 5. symposium on science of hadrons under extreme conditions
- Dates
- 18-20 Mar 2003
- Place
- Tokai, Ibaraki (Japan)
INIS
- Country of Publication
- Japan
- Country of Input or Organization
- Japan
- INIS RN
- 36116232
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- AXIAL-VECTOR CURRENTS; COLOR MODEL; ENERGY GAP; PARTICLE INTERACTIONS; PHASE TRANSFORMATIONS; POLARIZATION; QUANTUM CHROMODYNAMICS; SCHWINGER SOURCE THEORY; SPIN; SPIN ORIENTATION; SUPERCONDUCTIVITY; SYMMETRY BREAKING
- Descriptors DEC
- ALGEBRAIC CURRENTS; ANGULAR MOMENTUM; COMPOSITE MODELS; CURRENTS; ELECTRIC CONDUCTIVITY; ELECTRICAL PROPERTIES; FIELD THEORIES; INTERACTIONS; MATHEMATICAL MODELS; ORIENTATION; PARTICLE MODELS; PARTICLE PROPERTIES; PHYSICAL PROPERTIES; QUANTUM FIELD THEORY; QUARK MODEL
Optional Information
- Notes
- 4 refs., 4 figs.; This record replaces 35019877